1 / 32

Cryptography and Network Security Chapter 9

Cryptography and Network Security Chapter 9. Fifth Edition by William Stallings Lecture slides by Lawrie Brown. Chapter 9 – Public Key Cryptography and RSA.

dori
Télécharger la présentation

Cryptography and Network Security Chapter 9

An Image/Link below is provided (as is) to download presentation Download Policy: Content on the Website is provided to you AS IS for your information and personal use and may not be sold / licensed / shared on other websites without getting consent from its author. Content is provided to you AS IS for your information and personal use only. Download presentation by click this link. While downloading, if for some reason you are not able to download a presentation, the publisher may have deleted the file from their server. During download, if you can't get a presentation, the file might be deleted by the publisher.

E N D

Presentation Transcript


  1. Cryptography and Network SecurityChapter 9 Fifth Edition by William Stallings Lecture slides by Lawrie Brown

  2. Chapter 9 – Public Key Cryptography and RSA Every Egyptian received two names, which were known respectively as the true name and the good name, or the great name and the little name; and while the good or little name was made public, the true or great name appears to have been carefully concealed. —The Golden Bough, Sir James George Frazer

  3. Private-Key Cryptography • traditional private/secret/single key cryptography uses one key • shared by both sender and receiver • if this key is disclosed communications are compromised • also is symmetric, parties are equal • hence does not protect sender from receiver forging a message & claiming is sent by sender

  4. Public-Key Cryptography • probably most significant advance in the 3000 year history of cryptography • uses two keys – a public & a private key • asymmetric since parties are not equal • uses clever application of number theoretic concepts to function • complements rather than replaces private key crypto

  5. Why Public-Key Cryptography? • developed to address two key issues: • key distribution – how to have secure communications in general without having to trust a KDC with your key • digital signatures – how to verify a message comes intact from the claimed sender • public invention due to Whitfield Diffie & Martin Hellman at Stanford Uni in 1976 • known earlier in classified community

  6. Public-Key Cryptography • public-key/two-key/asymmetric cryptography involves the use of two keys: • a public-key, which may be known by anybody, and can be used to encrypt messages, and verify signatures • a related private-key, known only to the recipient, used to decrypt messages, and sign (create) signatures • infeasible to determine private key from public • is asymmetric because • those who encrypt messages or verify signatures cannot decrypt messages or create signatures

  7. Public-Key Cryptography

  8. Symmetric vs Public-Key

  9. Public-Key Cryptosystems

  10. Public-Key Applications • can classify uses into 3 categories: • encryption/decryption (provide secrecy) • digital signatures (provide authentication) • key exchange (of session keys) • some algorithms are suitable for all uses, others are specific to one

  11. Public-Key Requirements • Public-Key algorithms rely on two keys where: • it is computationally infeasible to find decryption key knowing only algorithm & encryption key • it is computationally easy to en/decrypt messages when the relevant (en/decrypt) key is known • either of the two related keys can be used for encryption, with the other used for decryption (for some algorithms) • these are formidable requirements which only a few algorithms have satisfied

  12. Public-Key Requirements • need a trapdoor one-way function • one-way function has • Y = f(X) easy • X = f–1(Y) infeasible • a trap-door one-way function has • Y = fk(X) easy, if k and X are known • X = fk–1(Y) easy, if k and Y are known • X = fk–1(Y) infeasible, if Y known but k not known • a practical public-key scheme depends on a suitable trap-door one-way function

  13. Security of Public Key Schemes • like private key schemes brute force exhaustive search attack is always theoretically possible • but keys used are too large (>512bits) • security relies on a large enough difference in difficulty between easy (en/decrypt) and hard (cryptanalyse) problems • more generally the hard problem is known, but is made hard enough to be impractical to break • requires the use of very large numbers • hence is slow compared to private key schemes

  14. RSA • by Rivest, Shamir & Adleman of MIT in 1977 • best known & widely used public-key scheme • based on exponentiation in a finite (Galois) field over integers modulo a prime • nb. exponentiation takes O((log n)3) operations (easy) • uses large integers (eg. 1024 bits) • security due to cost of factoring large numbers • nb. factorization takes O(e log n log log n) operations (hard)

  15. RSA En/decryption • to encrypt a message M the sender: • obtains public key of recipient PU={e,n} • computes: C = Me mod n, where 0≤M<n • to decrypt the ciphertext C the owner: • uses their private key PR={d,n} • computes: M = Cd mod n • note that the message M must be smaller than the modulus n (block if needed)

  16. RSA Key Setup • each user generates a public/private key pair by: • selecting two large primes at random: p, q • computing their system modulus n=p.q • note ø(n)=(p-1)(q-1) • selecting at random the encryption key e • where 1<e<ø(n), gcd(e,ø(n))=1 • solve following equation to find decryption key d • e.d=1 mod ø(n) and 0≤d≤n • publish their public encryption key: PU={e,n} • keep secret private decryption key: PR={d,n}

  17. Why RSA Works • because of Euler's Theorem: • aø(n)mod n = 1 where gcd(a,n)=1 • in RSA have: • n=p.q • ø(n)=(p-1)(q-1) • carefully chose e & d to be inverses mod ø(n) • hence e.d=1+k.ø(n) for some k • hence :Cd = Me.d = M1+k.ø(n) = M1.(Mø(n))k = M1.(1)k = M1 = M mod n

  18. RSA Example - Key Setup Select primes: p=17 & q=11 Calculate n = pq =17 x 11=187 Calculate ø(n)=(p–1)(q-1)=16x10=160 Select e:gcd(e,160)=1; choose e=7 Determine d:de=1 mod 160 and d < 160 Value is d=23 since 23x7=161= 10x160+1 Publish public key PU={7,187} Keep secret private key PR={23,187}

  19. RSA Example - En/Decryption • sample RSA encryption/decryption is: • given message M = 88 (nb. 88<187) • encryption: C = 887 mod 187 = 11 • decryption: M = 1123 mod 187 = 88

  20. Exponentiation • can use the Square and Multiply Algorithm • a fast, efficient algorithm for exponentiation • concept is based on repeatedly squaring base • and multiplying in the ones that are needed to compute the result • look at binary representation of exponent • only takes O(log2 n) multiples for number n • eg. 75 = 74.71 = 3.7 = 10 mod 11 • eg. 3129 = 3128.31 = 5.3 = 4 mod 11

  21. Exponentiation c = 0; f = 1 for i = k downto 0 do c = 2 x c f = (f x f) mod n if bi == 1then c = c + 1 f = (f x a) mod n return f

  22. Efficient Encryption • encryption uses exponentiation to power e • hence if e small, this will be faster • often choose e=65537 (216-1) • also see choices of e=3 or e=17 • but if e too small (eg e=3) can attack • using Chinese remainder theorem & 3 messages with different modulii • if e fixed must ensure gcd(e,ø(n))=1 • ie reject any p or q not relatively prime to e

  23. Efficient Decryption • decryption uses exponentiation to power d • this is likely large, insecure if not • can use the Chinese Remainder Theorem (CRT) to compute mod p & q separately. then combine to get desired answer • approx 4 times faster than doing directly • only owner of private key who knows values of p & q can use this technique

  24. RSA Key Generation • users of RSA must: • determine two primes at random - p, q • select either e or d and compute the other • primes p,qmust not be easily derived from modulus n=p.q • means must be sufficiently large • typically guess and use probabilistic test • exponents e, d are inverses, so use Inverse algorithm to compute the other

  25. RSA Security • possible approaches to attacking RSA are: • brute force key search - infeasible given size of numbers • mathematical attacks - based on difficulty of computing ø(n), by factoring modulus n • timing attacks - on running of decryption • chosen ciphertext attacks - given properties of RSA

  26. Factoring Problem • mathematical approach takes 3 forms: • factor n=p.q, hence compute ø(n) and then d • determine ø(n) directly and compute d • find d directly • currently believe all equivalent to factoring • have seen slow improvements over the years • as of May-05 best is 200 decimal digits (663) bit with LS • biggest improvement comes from improved algorithm • cf QS to GHFS to LS • currently assume 1024-2048 bit RSA is secure • ensure p, q of similar size and matching other constraints

  27. Progress in Factoring

  28. Progress in Factoring

  29. Timing Attacks • developed by Paul Kocher in mid-1990’s • exploit timing variations in operations • eg. multiplying by small vs large number • or IF's varying which instructions executed • infer operand size based on time taken • RSA exploits time taken in exponentiation • countermeasures • use constant exponentiation time • add random delays • blind values used in calculations

  30. Chosen Ciphertext Attacks • RSA is vulnerable to a Chosen Ciphertext Attack (CCA) • attackers chooses ciphertexts & gets decrypted plaintext back • choose ciphertext to exploit properties of RSA to provide info to help cryptanalysis • can counter with random pad of plaintext • or use Optimal Asymmetric Encryption Padding (OASP)

  31. Optimal Asymmetric Encryption Padding (OASP)

  32. Summary • have considered: • principles of public-key cryptography • RSA algorithm, implementation, security

More Related